DocumentCode :
2058187
Title :
A High Performance Decoupling Control of Induction Motor with Eficient Flux Estimator
Author :
Datta, Manoj ; Rafiq, Abdur ; Ghosh, Bashudeb Chandra
Author_Institution :
Department of Electrical and Electronic Engineering, Khulna University of Engineering and Technology, Bangladesh. E-mail: manojkuet@yahoo.com
fYear :
2007
fDate :
12-14 April 2007
Firstpage :
140
Lastpage :
145
Abstract :
A high performance decoupling control strategy for magnetizing current and torque current of induction motors (IM) is proposed. An extended state equation of induction motor is derived to obtain the coupling matrix elements between magnetizing current and torque current. To cancel these coupling matrix elements, equivalent respective elements of opposite sign are added to the output of the current controllers. In this extended state equation based block diagram of IM, all branches of the summing point have voltage dimension, and thus the equation enables easy understanding of the physical operation of the motor. In the extended state equation after decoupling, the transfer function of the motor becomes simple first order without rotor resistance. So it is free from rotor resistance variation with temperature. Efficient stator flux estimator is developed by Real Time Recurrent Learning (RTRL) algorithm based Recurrent Neural Network (RNN). This estimator is completely free from stator and rotor resistance variation problems. Simulation results are presented to verify the feasibility of the proposed controller.
Keywords :
Couplings; Equations; Induction motors; Magnetic flux; Recurrent neural networks; Rotors; Stators; Torque control; Transfer functions; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Engineering, Energy and Electrical Drives, 2007. POWERENG 2007. International Conference on
Conference_Location :
Setubal, Portugal
Print_ISBN :
978-1-4244-0895-5
Electronic_ISBN :
978-1-4244-0895-5
Type :
conf
DOI :
10.1109/POWERENG.2007.4380211
Filename :
4380211
Link To Document :
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